BACKGROUND
1. Field
[0001] The present disclosure is directed to aircraft power architecture, and more particularly
to hybrid-electric aircraft power architecture.
2. Description of Related Art
[0002] Turbo-charged aircraft engines can provide extra horsepower versus naturally aspirated
internal combustion engine. However, for a typical aircraft turbocharger there is
a net excess of power from the turbine at cruising speed above and beyond what the
compressor needs. One traditional use for this net excess power is to add power from
the shaft of the turbocharger to the main shaft of the internal combustion engine,
as in a turbo-compounded engine. This configuration can be advantageous for larger
displacement engines. For smaller displacement engines, e.g. 50 horse power (37.3
kW) or less, the mechanical complexity involved in turbo-compounding may be less suitable.
[0003] The conventional techniques have been considered satisfactory for their intended
purposes. However, there is an ever present need for improved systems and methods
for improved fuel efficiency and reduced thermal footprint.
SUMMARY
[0004] In a first aspect, there is provided an aircraft power system comprising a turbocharger,
the turbocharger including a compressor for supplying combustion air to an internal
combustion engine, a turbine operatively connected to an internal combustion engine
to receive an exhaust flow from the internal combustion engine and convert energy
of the exhaust flow into rotational power and, a turbo shaft operatively connecting
the turbine to the compressor to transfer at least some of the rotational power to
the compressor. A generator is operatively connected to the turbo shaft to receive
at least some of the rotational power from the turbo shaft for generating electrical
power. At least one electrically powered air-mover is electrically connected to the
generator to receive at least some of the electrical power to produce thrust.
[0005] In an embodiment of the above, the at least one electrically powered air-mover is
electrically connected to the generator via a direct electrical connection that excludes
power converters (e.g. without a power converter such as an AC/DC/AC power converter).
[0006] In a further embodiment of any of the above, the at least one electric powered air-mover
includes a thrust-producing rotor and at least one of variable inlet guide vanes,
a variable air nozzle, and/or variable pitch blades operable to adjust airflow into
and/or out of the thrust-producing rotor.
[0007] In a further embodiment of any of the above, the at least one electrically powered
air-mover includes a plurality of electrically powered air-movers electrically connected
to the generator through a switching network configured to selectively power various
air-movers of the plurality of electrically powered air-movers.
[0008] In a further embodiment of any of the above, the switching network is configured
to selectively power various air-movers in the plurality of electric powered air-movers.
[0009] In a further embodiment of any of the above, the system further includes the internal
combustion engine operatively connected to the compressor to receive the combustion
air from the compressor.
[0010] In a further embodiment of any of the above, the internal combustion engine is operatively
connected to a main air mover configured to provide thrust to an aircraft in cooperation
with the at least one electrically powered air-mover.
[0011] In a further embodiment of any of the above, the system includes the aircraft, including
an airframe, such that the main air mover and the at least one electrically powered
air-mover is mounted to the airframe.
[0012] In a further aspect, there is provided an aircraft comprising the aircraft power
system of any of the above or described or claimed herein, and an airframe, wherein
the at least one electrically powered air-mover, and optionally, the main air mover,
is/are mounted to the airframe.
[0013] In a further aspect, there is provided an aircraft power system comprising an internal
combustion engine, a turbocharger operatively connected to the turbocharger. The turbocharger
includes a compressor for supplying combustion air to the internal combustion engine,
a turbine operatively connected to an internal combustion engine to receive an exhaust
flow from the internal combustion engine and convert energy of the exhaust flow into
rotational and, a turbo shaft operatively connecting the turbine to the compressor
to transfer at least some of the rotational power to the compressor. A generator is
operatively connected to the turbo shaft to receive at least some of the rotational
power from the turbo shaft for generating electrical power. At least one electrically
powered air-mover having a thrust producing rotor is electrically connected to the
generator to receive at least some of the electrical power to produce thrust.
[0014] In an embodiment of the above, a controller is operatively connected to the electrical
generator and to the at least one electrically powered air mover.
[0015] In a further embodiment of any of the above, the controller is configured to control
the electrical generator to directly and selectively power the at least one electrically
powered air mover and to control one or more thrust control features of the at least
one electrically powered air movers.
[0016] In a further embodiment of any of the above, the one or more thrust control features
of the electrically powered air-mover includes at least one of variable pitch blades,
variable inlet guide vanes disposed upstream of a thrust-producing rotor, a variable
air nozzle downstream of a thrust-producing rotor, and/or switching network operatively
connected to the controller.
[0017] According to a further aspect, there is provided a method including supplying combustion
air to an internal combustion engine with a turbocharger, extracting electrical power
from the turbocharger, and using the extracted electrical power to drive at least
one electrically powered air-mover to generate thrust. Using the extracted electrical
power includes supplying the extracted electrical power directly to the at least one
electric powered air-mover without converting the power.
[0018] In an embodiment of the above, the method includes controlling one or both of loading
of the turbocharger and thrust from the at least one electrically powered air-mover
by adjusting airflow into and/or out of the at least one electric electrically powered
air mover. In a further embodiment of any of the above, the method includes adjusting
flow out of the air mover for control of loading of the turbocharger and/or thrust
from the at least one electric powered air-mover.
[0019] In a further embodiment of any of the above, the at least one electrically powered
air-mover is a plurality of electrically powered air-movers such that the method further
includes selectively powering various air-movers of the plurality of electrically
powered air-movers to control one or both of loading of the turbocharger and an overall
thrust generated by the plurality of electrically powered air-movers.
[0020] In a further embodiment of any of the above, the method includes providing thrust
to an aircraft from a main air mover powered by the internal combustion engine in
cooperation with providing thrust to the aircraft from the at least one electrically
powered air-mover.
[0021] In a further embodiment of any of the above, the method includes reducing an infrared
signature of the aircraft by drawing power out of the turbocharger to the at least
one electric powered air-mover.
[0022] These and other features of the systems and methods of the subject disclosure will
become more readily apparent to those skilled in the art from the following detailed
description taken in conjunction with the drawings. This disclosure provides improvements
in the turbo-charged aircraft engine space.
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] So that those skilled in the art to which the subject disclosure appertains will
readily understand how to make and use the devices and methods of the subject disclosure
without undue experimentation, embodiments thereof will be described in detail herein
below with reference to certain figures, wherein:
Fig. 1 is a schematic diagram of an embodiment of an aircraft constructed in accordance
with the present disclosure, showing an aircraft power system;
Fig. 2 is a schematic diagram of the aircraft power system Fig. 1 showing a configuration
of components in the aircraft power system;
Fig. 3 is a schematic diagram of an air mover, showing a means for controlling flow
out of the air mover;
Fig. 4 is a schematic diagram of another air mover, showing a means for controlling
flow into the air mover;
Fig. 5 is a schematic diagram of an air mover, showing another means for controlling
flow out of the air mover;
Fig. 6 is a schematic diagram of the aircraft power system of Fig. 1 showing another
configuration of components in the aircraft power system.
DETAILED DESCRIPTION
[0024] Reference will now be made to the drawings wherein like reference numerals identify
similar structural features or aspects of the subject disclosure. For purposes of
explanation and illustration, and not limitation, a partial view of an embodiment
of a system in accordance with the disclosure is shown in Fig. 1 and is designated
generally by reference character 100. Other embodiments of systems in accordance with
the disclosure, or aspects thereof, are provided in Figs. 2-6, as will be described.
The systems and methods described herein can be used to improve fuel economy and engine
cooling.
[0025] Shown in Fig. 1, an aircraft 1 (e.g. a manned or unmanned aircraft) having an airframe
10, can include an aircraft power system 100. The system 100 can include an internal
combustion engine 102 and a turbocharger 104 can be operatively connected to the internal
combustion engine 102. A main air mover 106 can be mounted to the airframe 10 and
operatively connected to the internal combustion engine 102 to provide thrust to the
aircraft 1.
[0026] Turning to Fig. 2, the turbocharger 104 can include a compressor 108 fluidly connected
to an air inlet of an internal combustion engine 102 for supplying compressed air
to a combustion section of the internal combustion engine 102. A turbine 110 can be
operatively connected to the internal combustion engine 102 and the compressor 108
through a turbo shaft 112. The turbine 110 receives an exhaust flow 114 from the internal
combustion engine 102 and converts the energy of the exhaust flow 114 into rotational
power. A generator 116 can be operatively connected to the turbo shaft 112 for generating
electrical power from rotation of the turbo shaft 112, utilizing a portion of energy
that is available in excess of the energy required for powering the compressor 108,
in at least some operating conditions of the aircraft power system 100. At least one
electrically powered air-mover 118 can be electrically connected to the generator
116 to be powered by electrical power produced by the generator 116 to produce thrust
for the aircraft 1. As shown in Figure 1, the at least one electrically powered air
mover 118 can also be mounted to the airframe 10 to provide thrust in cooperation
with the main air mover 106. The at least one electrically powered air-mover 118 can
be directly electrically connected to the generator 116 (e.g. at a fixed speed ratio)
without any intervening power electronics, such as inverters, rectifiers, or other
high power AC/DC/AC converters therebetween. For example, the at least one electrically
powered air-mover 118 may be an induction motor and/or can include line start permanent
magnets.
[0027] Shown in Figs. 3-5, the least one electrically powered air-mover 118 can include
a motor 122 and a thrust producing rotor 124 operatively connected to a main control
unit 120, connected to control portions of the least one electrically powered air-mover
118, for example one or more thrust control features. The thrust control features
can include, but are not limited to, variable pitch blades, variable inlet guide vanes,
variable nozzles, and/or a switching network. The thrust control features can adjust
the flow into and/or out of the at least one electrically powered air-mover 118 to
control loading of the turbocharger 104 (e.g. without bleeding off exhaust gas energy)
and/or to control thrust from the at least one electrically powered air-mover 118.
[0028] As shown in Fig. 3, the thrust producing rotor 124 having variable pitch blades 126
controlled by the main control unit 120 to adjust the airflow provided by the at least
one electrically powered air mover 118.
[0029] As shown in Fig. 4, variable inlet guide vanes 128 can be included on an inlet side
130 of the at least one electrically powered air-mover 118, upstream of the thrust
producing rotor 124 and controlled by the main control unit 120, to adjust the aerodynamic
load of the least one electrically powered air-mover 118 to regulate the speed of
the turbocharger 104 and/or boost to the target value needed for each given power
request.
[0030] As shown in Fig. 5, a variable air nozzle 132 can be included on an outlet side 134
of the at least one electrically powered air-mover 118, downstream of the thrust producing
rotor 124 and controlled by the main control unit 120 to control the pressure ratio
of the at least one electrically powered air-mover 118. It is also contemplated that
the variable air nozzle 132 can be a passive system configured to control the pressure
ratio of the at least one electrically powered air-mover 118 proportionally based
on ambient pressure. In either case, the pressure ratio of the at least one electrically
powered air-mover 118 can thus be adjusted to regulate the speed of the turbocharger
104 and/or boost to the target value needed for the power request.
[0031] Shown in Fig. 6, the at least one electrically powered air-mover 118 can be a plurality
of electrically powered air-movers 118a-f electrically connected to the generator
116 through a switching network 136. The switching network 136 can be connected to
the main control unit 120 to selectively power various air-movers 118, for example
to selectively power various air-movers 116 on or off, or to selectively modulate
the power provided to each of the air-movers 118a-f. By selectively powering and/or
modulating the distribution of power to air-movers 118, the speed of the turbocharger
104 and/or boost can be regulated in discrete steps rather than linearly. Additional
power adjustment can be adjusted using the speed of the internal combustion engine
102. Granularity can be adjusted for best trade-off between boost adjustability and
number of electrically powered air movers 116. More specifically, a low number of
air movers 118 is simpler but may only provide gross control, while conversely, a
large number of air movers 118 allows for the possibility of fine control, but with
added complexity and cost. Thus, while in Fig. 2, two electrically powered air movers
116 are shown, and in Fig. 5, six electrically powered air movers 116 are shown, any
suitable number of air movers 116 can be used as needed to achieve desired control
and/or complexity for a given application.
[0032] It should be understood that while each of thrust control features are shown and
described as distinct embodiments, those skilled in the art would readily appreciate
that the thrust control features can all be included in the same system 100 and that
yet other embodiments are possible that may combine some or all of the features of
the embodiments described herein. For example, the system 100 can include at least
one electrically powered air-mover 118 having any one or all of variable pitch blades
126, variable inlet guide vanes 128, and/or a variable air nozzle 132, each of which
may be operatively connected to the controller 120. Further, the plurality of electrically
powered air-movers 118a-f electrically connected to the generator 116 through the
switching network 134 can employ any suitable combination of variable pitch blades
126, variable inlet guide vanes 128, and/or a variable nozzle 132, to suit each particular
type, size and intended missions of the aircraft 1.
[0033] A method according to the present technology can include supplying air to the internal
combustion engine 102 with the turbocharger 104 and extracting electrical power from
the turbocharger 104. The extracted electrical power can then be used to drive at
least one electrically powered air-mover 118 to generate thrust. Using the extracted
electrical power can include supplying the extracted electrical power directly to
the at least one electrically powered air-mover 118 without converting the power.
Including the turbocharger 104 on the internal combustion engine 102, and extracting
power from the turbocharger 104 to the at least one electrically powered air-mover
118 can reduce an infrared signature of the aircraft 1 and provide additional means
for cooling to the system 100, as seen in Fig. 2. For example, the internal combustion
engine 102 draws in ambient air 113 through the compressor, and forces exhaust through
the turbine 110 to exit the turbocharger 104 as exhaust flow 114 with energy removed
from the exhaust. At least a portion of that spent energy is used by the electrical
generator 116 to power the at least one electrically powered air mover 118. The exhaust
flow 114 has a reduced temperature (relative to its temperature without a turbocharger),
reducing the overall infrared signature of the system 100.
[0034] The methods and systems of the present disclosure, as described above and shown in
the drawings, may provide for increased fuel economy in internal combustion engines
in at least some operating conditions and applications. In some cases, the economy
may be provided by harvesting waste energy and using it for vehicle propulsion. Further,
removing additional energy from the combustion engine and the turbocharger can cool
the exhaust, thereby reducing the infrared signature of the system 100. In some embodiments
and applications, this may lessen a chance of thermal detection of the system 100
and/or aircraft 1. While the apparatus and methods of the subject disclosure have
been shown and described, those skilled in the art will readily appreciate that changes
and/or modifications may be made thereto without departing from the scope of the subject
disclosure. For example, while in some embodiments the turbo shaft 112 may be a single
shaft, in other embodiments it may include multiple parts, such as one or more operatively
interconnected shafts.
1. An aircraft power system comprising:
a turbocharger (104) including:
a compressor (108) for supplying combustion air to an internal combustion engine (102);
a turbine (110) for receiving an exhaust flow (114) from an internal combustion engine
(102) and converting energy of the exhaust flow (114) into rotational power; and
a turbo shaft (112) operatively connecting the turbine (110) to the compressor (108)
to transfer at least some of the rotational power to the compressor (108);
a generator (116) operatively connected to the turbo shaft (112) to receive at least
some of the rotational power from the turbo shaft (112) for generating electrical
power; and
at least one electrically powered air-mover (118) electrically connected to the generator
(116) to receive at least some of the electrical power to produce thrust.
2. The system as recited in claim 1, wherein the at least one electrically powered air-mover
(118) is electrically connected to the generator (116) via a direct electrical connection
that excludes power converters.
3. The system as recited in claim 1 or 2, wherein the at least one electrically powered
air-mover (118) includes a thrust-producing rotor (124).
4. The system as recited in claim 3, further comprising variable inlet guide vanes (128)
disposed upstream of the thrust-producing rotor (124) and being operable to adjust
airflow to the thrust-producing rotor (124).
5. The system as recited in claim 3 or 4, further comprising a variable air nozzle downstream
of the thrust-producing rotor (124) and being operable to adjust airflow out of the
thrust producing rotor (124).
6. The system as recited in any of claims 3 to 5, wherein the thrust-producing rotor
(124) includes variable pitch blades (126).
7. The system as recited in any preceding claim, wherein the at least one electrically
powered air-mover (118) includes a plurality of electrically powered air-movers (118a-f)
electrically connected to the generator (116) through a switching network (134) configured
to selectively power various air-movers (118a-f) of the plurality of electrically
powered air-movers (118a-f).
8. The system as recited in any preceding claim, further comprising an internal combustion
engine (102) operatively connected to the compressor (108) to receive the combustion
air from the compressor (108).
9. The system as recited in claim 8, wherein the internal combustion engine (102) is
operatively connected to a main air mover (116) configured to provide thrust to an
aircraft (1) in cooperation with the at least one electrically powered air-mover (118),
optionally further comprising the aircraft (1) including an airframe (10) and wherein
the main air mover (116) and the at least one electrically powered air-mover (118)
are mounted to the airframe (10).
10. The system of any preceding claim, further comprising an internal combustion engine
(102), wherein the turbocharger (104) is operatively connected to the internal combustion
engine (102).
11. The system of any preceding claim, further comprising:
a controller (120) operatively connected to the electrical generator (116) and the
at least one electrically powered air mover (118), wherein controller (120) is configured
to:
control the electrical generator (116) to directly and selectively power the at least
one electrically powered air mover (118); and
control one or more thrust control features of the at least one electrically powered
air mover (118), optionally wherein the one or more thrust control features of the
electrically powered air-mover (118) includes at least one of variable pitch blades
(126), variable inlet guide vanes (128) disposed upstream of a thrust-producing rotor
(124), a variable air nozzle (132) downstream of a thrust-producing rotor (124), and/or
switching network (136) operatively connected to the controller (120).
12. A method comprising:
supplying combustion air to an internal combustion engine (102) with a turbocharger
(104);
extracting electrical power from the turbocharger (104); and
using the extracted electrical power to drive at least one electrically powered air-mover
(118) to generate thrust.
13. The method as recited in claim 12, wherein:
using the extracted electrical power includes supplying the extracted electrical power
directly to the at least one electrically powered air-mover (118) without converting
the power; and/or
the at least one electrically powered air-mover (118) is a plurality of electrically
powered air-movers (118a-f), and further comprising selectively powering various air-movers
(118a-f) of the plurality of electrically powered air-movers (118a-f) to control one
or both of loading of the turbocharger (104) and an overall thrust generated by the
plurality of electrically powered air-movers (118a-f).
14. The method as recited in claim 12 or 13, further comprising controlling one or both
of loading of the turbocharger (104) and thrust from the at least one electrically
powered air-mover (118) by adjusting airflow into and/or out of the at least one electrically
powered air mover (118).
15. The method as recited in any of claims 12 to 14, further comprising:
providing thrust to an aircraft (1) from a main air mover (118) powered by the internal
combustion engine (102) in cooperation with providing thrust to the aircraft (1) from
the at least one electrically powered air-mover (118); and/or
reducing an infrared signature of the aircraft (1) by drawing power out of the turbocharger
(104) to the at least one electrically powered air-mover (118).